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用于瞬时植物表达系统中过氧化物酶体靶向分析的荧光染料应用新指南。

New guidelines for fluorophore application in peroxisome targeting analyses in transient plant expression systems.

机构信息

Plant Biochemistry and Infection Biology, Institute of Plant Science and Microbiology, University of Hamburg, Hamburg, Germany.

出版信息

J Integr Plant Biol. 2019 Jul;61(7):884-899. doi: 10.1111/jipb.12791. Epub 2019 Apr 26.

DOI:10.1111/jipb.12791
PMID:30791204
Abstract

Peroxisome research has been revolutionized by proteome studies combined with in vivo subcellular targeting analyses. Yellow and cyan fluorescent protein (YFP and CFP) are the classical fluorophores of plant peroxisome research. In the new transient expression system of Arabidopsis seedlings co-cultivated with Agrobacterium we detected the YFP fusion of one candidate protein in peroxisomes, but only upon co-transformation with the peroxisome marker, CFP-PTS1. The data suggested that the YFP fusion was directed to peroxisomes due to its weak heterodimerization ability with CFP-PTS1, allowing piggy-back import into peroxisomes. Indeed, if co-expressed with monomeric Cerulean-PTS1 (mCer-PTS1), the YFP fusion was no longer matrix localized. We systematically investigated the occurrence and extent of dimerization-based piggy-back import for different fluorophore combinations in five major transient plant expression systems. In Arabidopsis seedlings and tobacco leaves both untagged YFP and monomeric Venus were imported into peroxisomes if co-expressed with CFP-PTS1 but not with mCer-PTS1. By contrast, piggy-back import of cytosolic proteins was not observed in Arabidopsis and tobacco protoplasts or in onion epidermal cells for any fluorophore combination at any time point. Based on these important results we formulate new guidelines for fluorophore usage and experimental design to guarantee reliable identification of novel plant peroxisomal proteins.

摘要

过氧化物酶体研究已经通过与体内亚细胞靶向分析相结合的蛋白质组学研究发生了革命性变化。黄色和青色荧光蛋白(YFP 和 CFP)是植物过氧化物体研究的经典荧光团。在我们与农杆菌共培养的拟南芥幼苗的新瞬时表达系统中,检测到一种候选蛋白在过氧化物体中的 YFP 融合,但仅在与过氧化物体标记物 CFP-PTS1 共转化时才检测到。数据表明,由于与 CFP-PTS1 的弱异二聚化能力,YFP 融合被定向到过氧化物体,从而允许其通过 piggy-back 进入过氧化物体。事实上,如果与单体 Cerulean-PTS1 (mCer-PTS1) 共表达,则 YFP 融合不再定位于基质中。我们系统地研究了不同荧光团组合在五个主要的瞬时植物表达系统中基于二聚化的 piggy-back 导入的发生和程度。在拟南芥幼苗和烟草叶片中,如果与 CFP-PTS1 共表达,未标记的 YFP 和单体 Venus 都会被导入过氧化物体,但与 mCer-PTS1 共表达则不会。相比之下,在任何时间点,对于任何荧光团组合,在拟南芥和烟草原生质体或洋葱表皮细胞中都未观察到细胞质蛋白的 piggy-back 导入。基于这些重要结果,我们制定了新的荧光团使用和实验设计指南,以确保可靠鉴定新的植物过氧化物体蛋白。

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New guidelines for fluorophore application in peroxisome targeting analyses in transient plant expression systems.用于瞬时植物表达系统中过氧化物酶体靶向分析的荧光染料应用新指南。
J Integr Plant Biol. 2019 Jul;61(7):884-899. doi: 10.1111/jipb.12791. Epub 2019 Apr 26.
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